Venner Samuel, Miele Vincent, Terzian Christophe, Biémont Christian, Daubin Vincent, Feschotte Cédric, Pontier Dominique
Laboratoire de Biométrie et Biologie Evolutive UMR5558-CNRS, Université de Lyon, Université Claude Bernard Lyon 1, Villeurbanne, Lyon, France.
LabEx ECOFECT (Eco-Evolutionary Dynamics of Infectious Diseases), Université Claude Bernard Lyon 1, Villeurbanne, Lyon, France.
PLoS Biol. 2017 Feb 15;15(2):e2001536. doi: 10.1371/journal.pbio.2001536. eCollection 2017 Feb.
Transposable elements (TEs) represent the single largest component of numerous eukaryotic genomes, and their activity and dispersal constitute an important force fostering evolutionary innovation. The horizontal transfer of TEs (HTT) between eukaryotic species is a common and widespread phenomenon that has had a profound impact on TE dynamics and, consequently, on the evolutionary trajectory of many species' lineages. However, the mechanisms promoting HTT remain largely unknown. In this article, we argue that network theory combined with functional ecology provides a robust conceptual framework and tools to delineate how complex interactions between diverse organisms may act in synergy to promote HTTs.
转座元件(TEs)是众多真核生物基因组中最大的单一组成部分,其活性和扩散是推动进化创新的重要力量。TEs在真核生物物种之间的水平转移(HTT)是一种常见且广泛存在的现象,对TE动态产生了深远影响,进而影响了许多物种谱系的进化轨迹。然而,促进HTT的机制在很大程度上仍不为人知。在本文中,我们认为网络理论与功能生态学相结合,提供了一个强大的概念框架和工具,以描绘不同生物之间的复杂相互作用如何协同作用来促进HTT。